WO2001075164A2 - Rna sequence-specific mediators of rna interference - Google Patents

Rna sequence-specific mediators of rna interference Download PDF

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Publication number
WO2001075164A2
WO2001075164A2 PCT/US2001/010188 US0110188W WO0175164A2 WO 2001075164 A2 WO2001075164 A2 WO 2001075164A2 US 0110188 W US0110188 W US 0110188W WO 0175164 A2 WO0175164 A2 WO 0175164A2
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WIPO (PCT)
Prior art keywords
rna
mrna
gene
cell
organism
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PCT/US2001/010188
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English (en)
French (fr)
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WO2001075164A3 (en
Inventor
Thomas Tuschl
Phillip A. Sharp
Phillip D. Zamore
David P. Bartel
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Whitehead Institute For Biomedical Research
Max-Planck-Gesellschaft Zur Forderung Der Wissenschaften E.V.
Massachusetts Institute Of Technology
University Of Massachussets Medical Center
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Application filed by Whitehead Institute For Biomedical Research, Max-Planck-Gesellschaft Zur Forderung Der Wissenschaften E.V., Massachusetts Institute Of Technology, University Of Massachussets Medical Center filed Critical Whitehead Institute For Biomedical Research
Priority to BRPI0117339A priority Critical patent/BRPI0117339B1/pt
Priority to CA 2404890 priority patent/CA2404890C/en
Priority to DE60140676T priority patent/DE60140676D1/de
Priority to AU2001249622A priority patent/AU2001249622B2/en
Priority to EP10184660.8A priority patent/EP2361981B2/en
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Priority to BRPI0117338A priority patent/BRPI0117338B1/pt
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Priority to EP01922870.9A priority patent/EP1309726B2/en
Priority to AU4962201A priority patent/AU4962201A/xx
Priority to AT01922870T priority patent/ATE450621T2/de
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Priority to JP2001573036A priority patent/JP5500750B2/ja
Priority to DK01922870.9T priority patent/DK1309726T4/en
Priority to IL15192801A priority patent/IL151928A0/xx
Priority to EP14164227.2A priority patent/EP2796553B1/en
Priority to NZ522045A priority patent/NZ522045A/en
Priority to BR0107536A priority patent/BR0107536A/pt
Publication of WO2001075164A2 publication Critical patent/WO2001075164A2/en
Priority to HU0302557A priority patent/HU230458B1/hu
Priority to IL15599101A priority patent/IL155991A0/xx
Priority to EP07014533A priority patent/EP1873259B1/en
Priority to BRPI0115814A priority patent/BRPI0115814B8/pt
Priority to EP01985833.1A priority patent/EP1407044B2/en
Priority to EP10179947.6A priority patent/EP2351852B2/en
Priority to TR2004/01292T priority patent/TR200401292T3/xx
Priority to DK01985833.1T priority patent/DK1407044T4/en
Priority to PCT/EP2001/013968 priority patent/WO2002044321A2/en
Priority to CA2429814A priority patent/CA2429814C/en
Priority to CZ20031839A priority patent/CZ302719B6/cs
Priority to JP2002546670A priority patent/JP4095895B2/ja
Priority to SI200130787T priority patent/SI1407044T2/en
Priority to US10/433,050 priority patent/US20040259247A1/en
Priority to EP17160119.8A priority patent/EP3199631B1/en
Priority to AU2002235744A priority patent/AU2002235744B8/en
Priority to DE60130583.3T priority patent/DE60130583T3/de
Priority to KR1020087011582A priority patent/KR100909681B1/ko
Priority to NZ525888A priority patent/NZ525888A/en
Priority to CNB018209009A priority patent/CN100523215C/zh
Priority to CZ2011452A priority patent/CZ308053B6/cs
Priority to KR1020037006978A priority patent/KR100872437B1/ko
Priority to PT01985833T priority patent/PT1407044E/pt
Priority to RU2003119457/13A priority patent/RU2322500C2/ru
Priority to PL365784A priority patent/PL218876B1/pl
Priority to MXPA03004836A priority patent/MXPA03004836A/es
Priority to AT01985833T priority patent/ATE373724T2/de
Priority to ES01985833.1T priority patent/ES2215494T5/es
Priority to IL151928A priority patent/IL151928A/en
Priority to US10/255,568 priority patent/US20030108923A1/en
Priority to KR1020027012832A priority patent/KR100919786B1/ko
Publication of WO2001075164A3 publication Critical patent/WO2001075164A3/en
Priority to ZA200303929A priority patent/ZA200303929B/xx
Priority to NO20032464A priority patent/NO333713B1/no
Priority to US10/832,257 priority patent/US20050026278A1/en
Priority to US10/832,248 priority patent/US7078196B2/en
Priority to US10/832,432 priority patent/US7056704B2/en
Priority to US11/142,865 priority patent/US20050234006A1/en
Priority to US11/142,866 priority patent/US20050234007A1/en
Priority to JP2006317758A priority patent/JP4494392B2/ja
Priority to US11/634,129 priority patent/US20070093445A1/en
Priority to US11/634,138 priority patent/US20080269147A1/en
Priority to AU2007203385A priority patent/AU2007203385B2/en
Priority to AU2007214287A priority patent/AU2007214287B2/en
Priority to IL192467A priority patent/IL192467B/en
Priority to JP2009210276A priority patent/JP6189576B2/ja
Priority to IL202350A priority patent/IL202350A/en
Priority to JP2010046471A priority patent/JP5749892B2/ja
Priority to AU2010241526A priority patent/AU2010241526B2/en
Priority to AU2013204199A priority patent/AU2013204199C1/en
Priority to JP2014251819A priority patent/JP6325974B2/ja
Priority to CY20191100963T priority patent/CY1122342T1/el
Priority to LTPA2021005C priority patent/LTPA2021005I1/lt

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Definitions

  • RNA interference or "RNAi” is a term initially coined by Fire and co-workers to describe the observation that double-stranded RNA (dsRNA) can block gene expression when it is introduced into worms (Fire et al. (1998) Nature 391, 806-811). dsRNA directs gene-specific, post-transcriptional silencing in many organisms, including vertebrates, and has provided a new tool for studying gene function. RNAi involves mRNA degradation, but many of the biochemical mechanisms underlying this interference are unknown. The recapitulation of the essential features of RNAi in vitro is needed for a biochemical analysis of the phenomenon.
  • RNAi RNA-specific, dsRNA-mediated interference in a cell-free system derived from syncytial blastoderm Drosophila embryos.
  • the in vitro system complements genetic approaches to dissecting the molecular basis of RNAi.
  • the molecular mechanisms underlying RNAi were examined using the Drosophila in vitro system. Results showed that RNAi is ATP-dependent yet uncoupled from mRNA translation.
  • both strands (sense and antisense) of the dsRNA are processed to small RNA fragments or segments of from about 21 to about 23 nucleotides (nt) in length (RNAs with mobility in sequencing gels that correspond to markers that are 21-23 nt in length, optionally referred to as 21-23 nt RNA).
  • RNAs with mobility in sequencing gels that correspond to markers that are 21-23 nt in length optionally referred to as 21-23 nt RNA.
  • Processing of the dsRNA to the small RNA fragments does not require the targeted mRNA, which demonstrates that the small RNA species is generated by processing of the dsRNA and not as a product of dsRNA-targeted mRNA degradation.
  • the mRNA is cleaved only within the region of identity with the dsRNA. Cleavage occurs at sites 21-23 nucleotides apart, the same interval observed for the dsRNA itself, suggesting that the 21-23 nucleotide fragments from the dsRNA are guiding mRNA cleavage. That purified 21-23 nt RNAs mediate RNAi confirms that these fragments are guiding mRNA cleavage.
  • the present invention relates to isolated RNA molecules (double- stranded; single-stranded) of from about 21 to about 23 nucleotides which mediate RNAi. That is, the isolated RNAs of the present invention mediate degradation of mRNA of a gene to which the mRNA corresponds (mediate degradation of mRNA that is the transcriptional product of the gene, which is also referred to as a target gene). For convenience, such mRNA is also referred to herein as mRNA to be degraded.
  • RNA, RNA molecule(s), RNA segment(s) and RNA fragment(s) are used interchangeably to refer to RNA that mediates RNA interference.
  • RNA molecules of the present invention can also comprise non-standard nucleotides, including non-naturally occurring nucleotides or deoxyribonucleo tides.
  • RNA of 21-23 nucleotides of the present invention need only be sufficiently similar to natural RNA that it has the ability to mediate (mediates) RNAi.
  • mediates RNAi refers to (indicates) the ability to distinguish which RNAs are to be degraded by the RNAi machinery or process.
  • RNA that mediates RNAi interacts with the RNAi machinery such that it directs the machinery to degrade particular mRNAs.
  • the present invention relates to RNA molecules of about 21 to about 23 nucleotides that direct cleavage of specific mRNA to which their sequence corresponds.
  • the 21-23 nt RNA molecules of the present invention comprise a 3' hydroxyl group.
  • the present invention also relates to methods of producing RNA molecules of about 21 to about 23 nucleotides with the ability to mediate RNAi cleavage.
  • the Drosophila in vitro system is used.
  • dsRNA is combined with a soluble extract derived. from Drosophila embryo, thereby producing a combination. The combination is maintained under conditions in which the dsRNA is processed to RNA molecules of about 21 to about 23 nucleotides.
  • the Drosophila in vitro system is used to obtain RNA sequences of about 21 to about 23 nucleotides which mediate RNA interference of the mRNA of a particular gene (e.g., oncogene, viral gene),
  • double-stranded RNA that corresponds to a sequence of the gene to be targeted is combined with a soluble extract derived from Drosophila embryo, thereby producing a combination.
  • the combination is maintained under conditions in which the double-stranded RNA is processed to RNA of about 21 to about 23 nucleotides in length.
  • 21- 23 nt RNA mediates RNAi of the mRNA of the targeted gene (the gene whose mRNA is to be degraded).
  • the method of obtaining 21-23 nt RNAs using the Drosophila in vitro system can further comprise isolating the RNA sequence from the combination.
  • the present invention also relates to 21-23 nt RNA produced by the methods of the present invention, as well as to 21-23 nt RNAs, produced by other methods, such as chemical synthesis or recombinant DNA techniques, that have the same or substantially the same sequences as naturally-occurring RNAs that mediate RNAi, such as those produced by the methods of the present invention. All of these are referred to as 21-23 nt RNAs that mediate RNA interference.
  • the term isolated RNA includes RNA obtained by any means, including processing or cleavage of dsRNA as described herein; production by chemical synthetic methods; and production by recombinant DNA techniques.
  • the invention further relates to uses of the 21-23 nt RNAs, such as for therapeutic or prophylactic treatment and compositions comprising 21-23 nt RNAs that mediate RNAi, such as pharmaceutical compositions comprising 21-23 nt RNAs and an appropriate carrier (e.g., a buffer or water).
  • an appropriate carrier e.g., a buffer or water
  • the present invention also relates to a method of mediating RNA interference of mRNA of a gene in a cell or organism (e.g., mammal such as a mouse or a human).
  • a cell or organism e.g., mammal such as a mouse or a human.
  • RNA of about 21 to about 23 nt which targets the mRNA to be degraded is introduced into the cell or organism.
  • the cell or organism is maintained under conditions under which degradation of the mRNA occurs, thereby mediating RNA interference of the mRNA of the gene in the cell or organism.
  • the cell or organism can be one in which RNAi occurs as the cell or organism is obtained or a cell or organism can be one that has been modified so that RNAi occurs (e.g., by addition of components obtained from a cell or cell extract that mediate RNAi or activation of endogenous components).
  • the tenn "cell or organism in which RNAi occurs” includes both a cell or organism in which RNAi occurs as the cell or organism is obtained, or a cell or organism that has been modified so that RNAi occurs.
  • the method of mediating RNA interference of a gene in a cell comprises combining double-stranded RNA that corresponds to a sequence of the gene with a soluble extract derived from Drosophila embryo, thereby producing a combination.
  • the combination is maintained under conditions in which the double-stranded RNA is processed to RNAs of about 21 to about 23 nucleotides. 21 to 23 nt RNA is then isolated and introduced into the cell or organism.
  • the cell or organism is maintained under conditions in which degradation of mRNA of the gene occurs, thereby mediating RNA interference of the gene in the cell or organism.
  • the cell or organism is one in which RNAi occurs naturally (in the cell or organism as obtained) or has been modified in such a manner that RNAi occurs.
  • 21 to 23 nt RNAs can also be produced by other methods, such as chemical synthetic methods or recombinant DNA techniques.
  • the present invention also relates to biochemical components of a cell, such as a Drosophila cell, that process dsRNA to RNA of about 21 to about 23 nucleotides.
  • biochemical components of a cell that are involved in targeting of mRNA by RNA of about 21 to about 23 nucleotides are the subject of the present invention, hi both embodiments, the biochemical components can be obtained from a cell in which they occur or can be produced by other methods, such as chemical synthesis or recombinant DNA methods.
  • isolated includes materials (e.g., biochemical components, RNA) obtained from a source in which they occur and materials produced by methods such as chemical synthesis or recombinant nucleic acid (DNA, RNA) methods.
  • materials e.g., biochemical components, RNA
  • DNA, RNA recombinant nucleic acid
  • the present invention also relates to a method for knocking down, (partially or completely) the targeted gene, thus providing an alternative to presently available methods of knocking down (or out) a gene or genes.
  • This method of knocking down gene expression can be used therapeutically or for research (e.g., to generate models of disease states, to examine the function of a gene, to assess whether an agent acts on a gene, to validate targets for drug discovery), fh those instances in which gene function is eliminated, the resulting cell or organism can also be referred to as a knockout.
  • One embodiment of the method of producing knockdown cells and organisms comprises introducing into a cell or organism in which a gene (referred to as a targeted gene) is to be knocked down, RNA of about 21 to about 23 nt that targets the gene and maintaining the resulting cell or organism under conditions under which RNAi occurs, resulting in degradation of the mRNA of the targeted gene, thereby producing knockdown cells or organisms.
  • Knockdown cells and organisms produced by the present method are also the subject of this invention.
  • the present invention also relates to a method of examining or assessing the function of a gene in a cell or organism.
  • RNA of about 21 to about 23 nt which targets mRNA of the gene for degradation is introduced into a cell or organism in which RNAi occurs.
  • the cell or organism is referred to as a test cell or organism.
  • the test cell or organism is maintained under conditions under which degradation of mRNA of the gene occurs.
  • the phenotype of the test cell or organism is then observed and compared to that of an appropriate control cell or organism, such as a corresponding cell or organism that is treated in the same manner except that the targeted (specific) gene is not targeted.
  • a 21 to 23 nt RNA that does not target the mRNA for degradation can be introduced into the control cell or organism in place of the RNA introduced into the test cell or organism, although it is not necessary to do so.
  • a difference between the phenotypes of the test and control cells or organisms provides information about the function of the degraded mRNA.
  • double-stranded RNA that corresponds to a sequence of the gene is combined with a soluble extract that mediates RNAi, such as the soluble extract derived from Drosophila embryo described herein, under conditions in which the double-stranded RNA is processed to generate RNA of about 21 to about 23 nucleotides.
  • a soluble extract that mediates RNAi such as the soluble extract derived from Drosophila embryo described herein.
  • the RNA of about 21 to about 23 nucleotides is isolated and then introduced into a cell or organism in which RNAi occurs (test cell or test organism). The test cell or test organism is maintained under conditions under which degradation of the mRNA occurs.
  • the phenotype of the test cell or organism is then observed and compared to that of an appropriate control, such as a corresponding cell or organism that is treated in the same manner as the test cell or organism except that the targeted gene is not targeted.
  • an appropriate control such as a corresponding cell or organism that is treated in the same manner as the test cell or organism except that the targeted gene is not targeted.
  • a difference between the phenotypes of the test and control cells or organisms provides information about the function of the targeted gene. The information provided may be sufficient to identify (define) the function of the gene or may be used in conjunction with information obtained from other assays or analyses to do so.
  • RNA of from about 21 to about 23 nucleotides that targets the mRNA to be degraded is introduced into a cell or organism in which RNAi occurs.
  • the cell or organism (which contains the introduced RNA) is maintained under conditions under which degradation of mRNA occurs, and the agent is introduced into the cell or organism. Whether the agent has an effect on the cell or organism is determined; if the agent has no effect on the cell or organism, then the agent acts on the gene.
  • the present invention also relates to a method of validating whether a gene product is a target for drug discovery or development.
  • RNA of from about 21 to about 23 nucleotides that targets the mRNA that corresponds to the gene for degradation is introduced into a cell or orgamsm.
  • the cell or organism is maintained under conditions in which degradation of the mRNA occurs, resulting in decreased expression of the gene. Whether decreased expression of the gene has an effect on the cell or organism is determined, wherein if decreased expression of the gene has an effect, then the gene product is a target for drug discovery or development.
  • the present invention also encompasses a method of treating a disease or condition associated with the presence of a protein in an individual comprising administering to the individual RNA of from about 21 to about 23 nucleotides which targets the mRNA of the protein (the mRNA that encodes the protein) for degradation.
  • the protein is not produced or is not produced to the extent it would be in the absence of the treatment.
  • Also encompassed by the present invention is a gene identified by the sequencing of endogenous 21 to 23 nucleotide RNA molecules that mediate RNA interference.
  • Also encompassed by the present invention is a method of identifying target sites within an mRNA that are particularly suitable for RNAi as well as a method of assessing the ability of 21-23 nt RNAs to mediate RNAi.
  • Figure 1 is a schematic representation of reporter mRNAs and dsRNAs Rr-Luc and Pp-Luc. Lengths and positions of the ssRNA, asRNA, and dsRNAs are shown as black bars relative to the Rr-Luc and Pp-Luc reporter mRNA sequences. Black rectangles indicate the two unrelated luciferase coding sequences, lines correspond to the 5' and 3' untranslated regions of the mRNAs.
  • Figure 2 A is a graph of the ratio of luciferase activities after targeting 50 pM Pp- Luc mRNA with 10 nM ssRNA, asRNA, or dsRNA from the 505 bp segment of the Pp- Luc gene showing gene-specific interference by dsRNA in vitro.
  • the data are the average values of seven trials ⁇ standard deviation.
  • Four independently prepared lysates were used. Luciferase activity was normalized to the buffer control; a ratio equal to one indicates no gene-specific interference.
  • Figure 2B is a graph of the ratio of luciferase activities after targeting 50 pM Rr- Luc mRNA with 10 nM ssRNA, asRNA, or dsRNA from the 501 bp segment of the Rr- Luc gene showing gene-specific interference by dsRNA in vitro.
  • the data are the average values of six trials ⁇ standard deviation.
  • a Rr-Luc/Pp-Luc ratio equal to one indicates no gene-specific interference.
  • Figure 3 A is a schematic representation of the experimental strategy used to show that incubation in the Drosophila embryo lysate potentiates dsRNA for gene- specific interference.
  • the same dsRNAs used in Figure 2 (or buffer) was serially preincubated using two-fold dilutions in six successive reactions with Drosophila embryo lysate, then tested for its capacity to block mRNA expression.
  • the same amount of dsRNA (10 nM) or buffer was diluted directly in buffer and incubated with Pp-Luc and Rr-Luc mRNAs and lysate.
  • Figure 3B is a graph of potentiation when targeting Pp-Luc mRNA. Black columns indicate the dsRNA or the buffer was serially preincubated; white columns correspond to a direct 32-fold dilution of the dsRNA. Values were normalized to those of the buffer controls.
  • Figure 3C is a graph of potentiation when targeting Rr-Luc mRNA.
  • the corresponding buffer control is shown in Figure 3B.
  • Figure 4 is a graph showing effect of competitor dsRNA on gene- specific interference.
  • Increasing concentrations of nanos dsRNA 508 bp were added to reactions containing 5 nM dsRNA (the same dsRNAs used in Figures 2A and 2B) targeting Pp-Luc mRNA (black columns, left axis) or Rr-Luc mRNA (white columns, right axis).
  • Each reaction contained both a target mRNA (Pp-Luc for the black columns, Rr-Luc for the white) and an unrelated control mRNA (Rr-Luc for the black columns, Pp-Luc for the white). Values were normalized to the buffer control (not shown). The reactions were incubated under standard conditions (see Methods).
  • Figure 5 A is a graph showing the effect of dsRNA on mRNA stability. Circles, Pp-Luc mRNA; squares, Rr-Luc mRNA; filled symbols, buffer incubation; open symbols, incubation with Pp-dsRNA.
  • Figure 5B is a graph showing the stability of Rr-Luc mRNA incubated with Rr- dsRNA or Pp-dsRNA. Filled squares, buffer; open squares, Pp-dsRNA (10 nM); open circles, Rr-dsRNA (10 nM).
  • Figure 5C is a graph showing the dependence on dsRNA length.
  • the stability of the Pp-Luc mRNA was assessed after incubation in lysate in the presence of buffer or dsRNAs of different lengths. Filled squares, buffer; open circles, 49 bp dsRNA (10 nM); open inverted triangles, 149 bp dsRNA (10 nM); open triangles, 505 bp dsRNA (10 nM); open diamonds, 997 bp dsRNA (10 nM). Reactions were incubated under standard conditions (see Methods).
  • Figure 6 is a graph showing that RNAi Requires ATP.
  • Creatine kinase uses creatine phosphate (CP) to regenerate ATP. Circles, +ATP, +CP, +CK; squares, -ATP, +CP, +CK; triangles, -ATP, -CP, +CK; inverted angles, -ATP, +CP, -CK.
  • Figure 7 A is a graph of protein synthesis, as reflected by luciferase activity produced after incubation of Rr-luc mRNA in the in vitro RNAi reaction for 1 hour, in the presence of the protein synthesis inhibitors anisomycin, cycloheximide, or chloramphenicol, relative to a reaction without any inhibitor showing that RNAi does not require mRNA translation.
  • Figure 7B is a graph showing translation of 7-methyl-guanosine- and adenosine- capped Pp-luc mRNAs (circles and squares, respectively) in the RNAi reaction in the absence of dsRNA, as measured by luciferase activity produced in a one-hour incubation.
  • Figure 7C is a graph showing incubation in an RNAi reaction of uniformly 32 P- radiolabeled 7-methyl-guanosine-capped Pp-luc mRNA (circles) and adenosine-capped Pp-luc mRNA (squares), in the presence (open symbols) and absence (filled symbols) of 505 bp Pp-luc dsRNA.
  • Figure 8 A is a graph of the of the denaturing agarose-gel analysis of Pp-luc mRNA incubated in a standard RNAi reaction with buffer, 505 nt Pp-asRNA, or 505 bp Pp-dsRNA for the times indicated showing that asRNA causes a small amount of RNAi in vitro.
  • Figure 8B is a graph of the of the denaturing agarose-gel analysis of Rr-luc mRNA incubated in a standard RNAi reaction with buffer, 505 nt Pp-asRNA, or 505 bp Pp-dsRNA for the times indicated showing that asRNA causes a small amount of RNAi in vitro.
  • Figure 9 is a schematic of the positions of the three dsRNAs, 'A,' 'B,' and 'C,' relative to the Rr-luc mRNA.
  • FigurelO indicates the cleavage sites mapped onto the first 267 nt of the Rr-luc mRNA (SEQ ID NO: 1).
  • the blue bar below the sequence indicates the position of dsRNA 'C,' and blue circles indicate the position of cleavage sites caused by this dsRNA.
  • the green bar denotes the position of dsRNA 'B,' and green circles, the cleavage sites.
  • the magenta bar indicates the position of dsRNA 'A,' and magenta circles, the cleavages.
  • An exceptional cleavage within a run of 7 uracils is marked with a red arrowhead.
  • RNAi is envisioned to begin with cleavage of the dsRNA to 21-23 nt products by a dsRNA-specific nuclease, perhaps in a multiprotein complex. These short dsRNAs might then be dissociated by an ATP- dependent helicase, possibly a component of the initial complex, to 21-23 nt asRNAs that could then target the mRNA for cleavage.
  • the short asRNAs are imagined to remain associated with the RNAi-specific proteins (circles) that were originally bound by the full-length dsRNA, thus explaining the inefficiency of asRNA to trigger RNAi in vivo and in vitro.
  • a nuclease would cleave the mRNA.
  • Figure 12 is a bar graph showing sequence-specific gene silencing by 21-23 nt fragments. Ratio of luciferase activity after targeting of Pp-Luc and Rr-Luc mRNA by 5 nM Pp-Luc or Rr-Luc dsRNA (500 bp) or 21-23 nt fragments isolated from a previous incubation of the respective dsRNA in Drosophila lysate. The amount of isolated 21-23 mers present in the incubation reaction correspond to approximately the same amount of 21-23 mers generated during an incubation reaction with 5 nM 500 bp dsRNA. The data are average values of 3 trials and the standard deviation is given by error bars. Luciferase activity was normalized to the buffer control.
  • Figure 13A illustrates the purification of RNA fragments on a Superdex HR 200 10/30 gel filtration column (Pharmacia) using the method described in Example 4.
  • dsRNA was 32P-labeled, and the radioactivity recovered in each column fraction is graphed. The fractions were also analyzed by denaturing gel electrophoresis (inset).
  • Figure 13B demonstrates the ability of the Rr-luciferase RNA, after incubation in the Drosophila lysate and fractionation as in Fig. 13 A, to mediate sequence-specific interference with the expression of a Rr-luciferase target mRNA.
  • One microliter of each resuspended fraction was tested in a 10 microliter in vitro RNAi reaction (see Example 1). This procedure yields a concentration of RNA in the standard in vitro RNAi reaction that is approximately equal to the concentration of that RNA species in the original reaction prior to loading on the column. Relative luminescence per second has been normalized to the average value of the two buffer controls.
  • Figure 13C is the specificity control for Fig 13B. It demonstrates that the fractionated RNA of Fig 13B does not efficiently mediate sequence-specific interference with the expression of a Pp-luciferase mRNA. Assays are as in Fig 13B.
  • Figures 14A and 14B are schematic representations of reporter constructs and siRNA duplexes.
  • Figure 14A illustrates the firefly (Pp-luc) and sea pansy (Rr- luc) luciferase reporter gene regions from plasmids pGL2-Control, pGL3-Control, and pRL-TK (Promega).
  • SV40 regulatory elements, the HSV thymidine. kinase promoter, and two introns (lines) are indicated.
  • GL3 luciferase The sequence of GL3 luciferase is 95% identical to GL2, but RL is completely unrelated to both. Luciferase expression from pGL2 is approximately 10-fold lower than from pGL3 in transfected mammalian cells.
  • the region targeted by the siRNA duplexes is indicated as black bar below the coding region of the " luciferase genes.
  • Figure 14B shows the sense (top) and antisense (bottom) sequences of the siRNA duplexes targeting GL2 (SEQ ID Nos: 10 and 11), GL3 (SEQ ID Nos: 12 and 13), and RL (SEQ ID Nos: 14 and 15) luciferase are shown.
  • the GL2 and GL3 siRNA duplexes differ by only 3 single nucleotide substitutions (boxed in gray).
  • a duplex with the inverted GL2 sequence, invGL2 (SEQ ID Nos: 16 and 17), was synthesized.
  • the 2 nt 3' overhang of 2'-deoxythymidine is indicated as TT;
  • uGL2 (SEQ ID Nos: 18 and 19) is similar to GL2 siRNA but contains ribo-uridine 3' overhangs.
  • Figures 15A-15J are graphs showing RNA interference by siRNA duplexes.
  • Ratios of target to control luciferase were normalized to a buffer control (bu, black bars); gray bars indicate ratios of Photinus pyralis (Rp-luc) GL2 or GL3 luciferase to Renilla reniformis (Rr-luc) RL luciferase (left axis), white bars indicate RL to GL2 or GL3 ratios (right axis).
  • Figures 15A, 15C, 15E, 15G, and 151 show results of experiments perfomied with the combination of pGL2-Control and pRL-TK reporter plasmids
  • Figures 15B, 15D, 15F, 15H, and 15 J with pGL3-Control and pRL-TK reporter plasmids.
  • the cell line used for the interference experiment is indicated at the top of each plot.
  • the ratios of Pp-luc/Rr-luc for the buffer control (bu) varied between 0.5 and 10 for pGL2/pRL, and between 0.03 and 1 for pGL3/pRL, respectively, before nonnalization and between the various cell lines tested.
  • the plotted data were averaged from three independent experiments ⁇ S.D.
  • Figures 16A-16F are graphs showing the effects of 21 nt siRNAs, 50 bp, and 500 bp dsRNAs on luciferase expression in HeLa cells. The exact length of the long dsRNAs is indicated below the bars.
  • Figures 16A, 16C, and 16E describe experiments performed with pGL2-Control and pRL-TK reporter plasmids, Figures 16B, 16D, and 16F with pGL3-Control and pRL-TK reporter plasmids. The data were averaged from two independent experiments ⁇ S.D.
  • Figures 16A, 16B Absolute Pp-luc expression, plotted in arbitrary luminescence units.
  • Figure 16C, 16D, Rr-luc expression plotted in arbitrary luminescence units.
  • Figures 16E, 16F Ratios of normalized target to control luciferase. The ratios of luciferase activity for siRNA duplexes were normalized to a buffer control (bu, black bars); the luminescence ratios for 50 or 500 bp dsRNAs were normalized to the respective ratios observed for 50 and 500 bp dsRNA from humanized GFP (hG, black bars).
  • Double-stranded directs the sequence-specific degradation of mRNA through a process known as RNA interference (RNAi).
  • RNAi RNA interference
  • the process is known to occur in a wide variety of organisms, including embryos of mammals and other vertebrates.
  • dsRNA is processed to RNA segments 21-23 nucleotides (nt) in length, and furthermore, that when these 21-23 nt fragments are purified and added back to Drosophila extracts, they mediate RNA interference in the absence of longer dsRNA.
  • these 21-23 nt fragments are sequence-specific mediators of RNA degradation.
  • a molecular signal which may be the specific length of the fragments, must be present in these 21-23 nt fragments to recruit cellular factors involved in RNAi.
  • This present invention encompasses these 21-23 nt fragments and their use for specifically inactivating gene function.
  • the use of these fragments (or recombinantly produced or chemically synthesized oligonucleotides of the same or similar nature) enables the targeting of specific mRNAs for degradation in mammalian cells.
  • Use of long dsRNAs in mammalian cells to elicit RNAi is usually not practical, presumably because of the deleterious effects of the interferon response.
  • Specific targeting of a particular gene function which is possible with 21-23 nt fragments of the present invention, is useful in functional genomic and therapeutic applications.
  • the present invention relates to RNA molecules of about 21 to about 23 nucleotides that mediate RNAi.
  • the present invention relates to RNA molecules of about 21 to about 23 nucleotides that direct cleavage of specific mRNA to which they correspond.
  • the 21-2 * 3 nt RNA molecules of the present invention can also comprise a 3' hydroxyl group.
  • the 21-23 nt RNA molecules can be single-stranded or double stranded (as two 21-23 nt RNAs); such molecules can be blunt ended or comprise overhanging ends (e.g., 5 3').
  • the RNA molecule is double stranded and either blunt ended or comprises overhanging ends (as two 21-23 nt RNAs).
  • At least one strand of the RNA molecule has a 3' overhang from about 1 to about 6 nucleotides (e.g., pyrimidine nucleotides, purine nucleotides) in length, h other embodiments, the 3' overhang is from about 1 to about 5 nucleotides, from about 1 to about 3 nucleotides and from about 2 to about 4 nucleotides in length, hi one embodiment the RNA molecule is double stranded, one strand has a 3' overhang and the other strand can be blunt-ended or have an overhang, hi the embodiment in which the RNA molecule is double stranded and both strands comprise an overhang, the length of the overhangs maybe the same or different for each strand, hi a particular embodiment, the RNA of the present invention comprises 21 nucleotide strands which are paired and which have overhangs of from about 1 to about 3, particularly about 2, nucleotides on both 3' ends of the RNA.
  • the 3' overhangs can be stabilized against degradation, hi one embodiment, the RNA is stabilized by including purine nucleotides, such as adenosine or guanosine nucleotides.
  • purine nucleotides such as adenosine or guanosine nucleotides.
  • substitution of pyrimidine nucleotides by modified analogues e.g., substitution of uridine 2 nucleotide 3' overhangs by 2'-deoxythymidine is tolerated and does not affect the efficiency of RNAi.
  • the absence of a 2' hydroxyl significantly enhances the nuclease resistance of the overhang in tissue culture medium.
  • the 21-23 nt RNA molecules of the present invention can be obtained using a number of techniques known to those of skill in the art.
  • the RNA can be chemically synthesized or recombinantly produced using methods known in the art.
  • the 21-23 nt RNAs can also be obtained using the Drosophila in vitro system described herein.
  • Use of the Drosophila in vitro system entails combining dsRNA with a soluble extract derived from Drosophila embryo, thereby producing a combination. The combination is maintained under conditions in which the dsRNA is processed to RNA of about 21 to about 23 nucleotides.
  • the Drosophila in vitro system can also be used to obtain RNA of about 21 to about 23 nucleotides in length which mediates RNA interference of the mRNA of a particular gene (e.g., oncogene, viral gene), hi this embodiment, double-stranded RNA that corresponds to a sequence of the gene is combined with a soluble extract derived from Drosophila embryo, thereby producing a combination. The combination is maintained under conditions in which the double- stranded RNA is processed to the RNA of about 21 to about 23 nucleotides. As shown herein, 21-23 nt RNA mediates RNAi of the mRNA to be degraded.
  • a particular gene e.g., oncogene, viral gene
  • the present invention also relates to the 21-23 nt RNA molecules produced by the methods described herein.
  • the methods described herein are used to identify or obtain 21-23 nt RNA molecules that are useful as sequence-specific mediators of RNA degradation and, thus, for inhibiting mRNAs, such as human mRNAs, that encode products associated with or causative of a disease or an undesirable condition.
  • mRNAs such as human mRNAs
  • production of an oncoprotein or viral protein can be inhibited in humans in order to prevent the disease or condition from occurring, limit the extent to which it occurs or reverse it.
  • 21-23 nt RNAs can be produced and tested for their ability to mediate RNAi in a cell, such as a human or other primate cell. Those 21-23 nt human RNA molecules shown to mediate RNAi can be tested, if desired, in an appropriate animal model to further assess their in vivo effectiveness. Additional copies of 21-23 nt RNAs shown to mediate RNAi can be produced by the methods described herein. The method of obtaining the 21-23 nt RNA sequence using the Drosophila in vitro system can further comprise isolating the RNA sequence from the combination.
  • the 21-23 nt RNA molecules can be isolated using a number of techniques known to those of skill in the art. For example, gel electrophoresis can be used to separate 21-23 nt RNAs from the combination, gel slices comprising the RNA sequences removed and RNAs eluted from the gel slices. Alternatively, non-denaturing methods, such as non-denaturing column chromatography, can be used to isolate the RNA produced, hi addition, chromatography (e.g., size exclusion chromatography), glycerol gradient centrifugation, affinity purification with antibody can be used to isolate 21 -23 nt RNAs.
  • gel electrophoresis can be used to separate 21-23 nt RNAs from the combination, gel slices comprising the RNA sequences removed and RNAs eluted from the gel slices.
  • non-denaturing methods such as non-denaturing column chromatography, can be used to isolate the RNA produced, hi addition, chromatography (e.g., size ex
  • RNA-protein complex isolated from the Drosophila in vitro system can also be used directly in the methods described herein (e.g., method of mediating RNAi of mRNA of a gene).
  • Soluble extracts derived from Drosophila embryo that mediate or RNAi are encompassed by the invention.
  • the soluble Drosophila extract can be obtained in a variety of ways.
  • the soluble extract canhe obtained from syncytial blastoderm Drosopliila embryos as described in Examples 1, 2, and 3.
  • Soluble extracts can be derived from other cells in which RNAi occurs.
  • soluble extracts can be obtained from a cell that does not carry out RNAi. In this instance, the factors needed to mediate RNAi can be introduced into such a cell and the soluble extract is then obtained.
  • the components of the extract can also be chemically synthesized and/or combined using methods known in the art.
  • any dsRNA can be used in the methods of the present invention, provided that it has sufficient homology to the targeted gene to mediate RNAi.
  • the sequence of the dsRNA for use in the methods of the present invention need not be known.
  • the dsRNA for use in the present invention can correspond to a known sequence, such as that of an entire gene (one or more) or portion thereof.
  • the dsRNA can range from about 21 base pairs (bp) of the gene to the full length of the gene or more.
  • the dsRNA used in the methods of the present invention is about 1000 bp in length. In another embodiment, the dsRNA is about 500 bp in length.
  • the dsRNA is about 22 bp in length.
  • the 21 to 23 nt RNAs described herein can be used in a variety of ways.
  • the 21 to 23 nt RNA molecules can be used to mediate RNA interference of mRNA of a gene in a cell or organism, h a specific embodiment, the 21 to 23 nt RNA is introduced into human cells or a human in order to mediate RNA interference in the cells or in cells in the individual, such as to prevent or treat a disease or undesirable condition, hi this method, a gene (or genes) that cause or contribute to the disease or undesirable condition is targeted and the corresponding mRNA (the transcriptional product of the targeted gene) is degraded by RNAi.
  • an RNA of about 21 to about 23 nucleotides that targets the corresponding mRNA (the mRNA of the targeted gene) for degradation is introduced into the cell or organism.
  • the cell or organism is maintained under conditions under which degradation of the corresponding mRNA occurs, thereby mediating RNA interference of the mRNA of the gene in the cell or organism.
  • the method of mediating RNA interference of a gene in a cell comprises combining double-stranded RNA that corresponds to a sequence of the gene with a soluble extract derived from Drosophila embryo, thereby producing a combination.
  • the combination is maintained under conditions in which the double-stranded RNA is processed to RNA of about 21 to about 23 nucleotides.
  • the 21 to 23 nt RNA is then isolated and introduced into the cell or organism.
  • the cell or organism is maintained under conditions in which degradation of mRNA of the gene occurs, thereby mediating RNA interference of the gene in the cell or organism, hi the event that the 21-23nt RNA is introduced into a cell in which RNAi, does not nonnally occur, the factors needed to mediate RNAi are introduced into such a cell or the expression of the needed factors is induced in such a cell.
  • 21 to 23 nt RNA produced by other methods e.g., chemical synthesis, recombinant DNA production
  • 21 to 23 nt RNAs can be similarly used to mediate RNAi.
  • Such 21 to 23 nt RNAs can be altered by addition, deletion, substitution or modification of one or more nucleotides and/or can comprise non-nucleotide materials.
  • a further embodiment of this invention is an ex vivo method of treating cells from an individual to degrade a gene(s) that causes or is associated with a disease or undesirable condition, such as leukemia or AIDS
  • cells to be treated are obtained from the individual using known methods (e.g., phlebotomy or collection of bone marrow) and 21-23 nt RNAs that mediate degradation ofthe corresponding n ⁇ RNA(s) are introduced into the cells, which are then re-introduced into the individual.
  • biochemical components needed for RNAi to occur can also be introduced into the cells.
  • the mRNA of any gene can be targeted for degradation using the methods of mediating interference of mRNA described herein.
  • any cellular or viral mRNA can be targeted, and, as a result, the encoded protein (e.g., an oncoprotein, a viral protein), expression will be diminished, h addition, the mRNA of any protein associated with/causative of a disease or undesirable condition can be targeted for degradation using the methods described herein.
  • the present invention also relates to a method of examining the function of a gene in a cell or organism.
  • an RNA sequence of about 21 to about 23 nucleotides that targets mRNA ofthe gene for degradation is introduced into the cell or organism.
  • the cell or organism is maintained under conditions under which degradation of mRNA ofthe gene occurs.
  • the phenotype ofthe cell or organism is then observed and compared to an appropriate control, thereby providing information about the function ofthe gene
  • double-stranded RNA that corresponds to a sequence ofthe gene is combined with a soluble extract derived from Drosophila embryo under conditions in which the double-stranded RNA is processed to generate RNA of about 21 to about 23 nucleotides.
  • RNA of about 21 to about 23 nucleotides is isolated and then introduced into the cell or organism.
  • the cell or organism is maintained under conditions in which degradation ofthe mRNA ofthe gene occurs.
  • the phenotype of the cell or organism is then observed and compared to an appropriate control, thereby identifying the function ofthe gene.
  • a further aspect of this invention is a method of assessing the ability of 21-23 nt RNAs to mediate RNAi and, particularly, determining which 21-23 nt RNA(s) most efficiently mediate RNAi.
  • dsRNA corresponding to a sequence of an mRNA to be degraded is combined with detectably labeled (e.g., end-labeled, such as radiolabeled) mRNA and the soluble extract of this invention, thereby producing a combination.
  • detectably labeled e.g., end-labeled, such as radiolabeled
  • the combination is maintained under conditions under which the double-stranded RNA is processed and the mRNA is degraded.
  • the sites ofthe most effective cleavage are mapped by comparing the migration ofthe labeled mRNA cleavage products to markers of known length. 21 mers spanning these sites are then designed and tested for their efficiency in mediating RNAi.
  • the extract ofthe present invention can be used to determine whether there is a particular segment or particular segments ofthe mRNA corresponding to a gene which are more efficiently targeted by RNAi than other regions and, thus, can be especially useful target sites.
  • dsRNA corresponding to a sequence of a gene to be degraded, labeled mRNA ofthe gene is combined with a soluble extract that mediates RNAi, thereby producing a combination.
  • the resulting combination is maintained under conditions under which the dsRNA is degraded and the sites on the mRNA that are most efficiently cleaved are identified, using known methods, such as comparison to known size standards on a sequencing gel.
  • RNAi Biochemical analysis of RNAi has become possible with the development of the in vitro Drosophila embryo lysate that recapitulates dsRNA-dependent silencing of gene expression described in Example 1 (Tuschl et al., Genes Dev., 13:3191-7 (1999)).
  • dsRNA but not sense or asRNA, targets a corresponding mRNA for degradation, yet does not affect the stability of an unrelated control mRNA.
  • RNAi is mediated by sequence specific processes in soluble reactions.
  • the in vitro system was used to analyze the requirements of RNAi and to determine the fate ofthe dsRNA and the mRNA.
  • RNAi in vitro requires ATP, but does not require either mRNA translation or recognition ofthe 7-methyl-guanosine cap ofthe targeted mRNA.
  • the dsRNA but not single-stranded RNA, is processed in vitro to a population of 21-23 nt species. Deamination of adenosines within the dsRNA does not appear to be required for formation ofthe 21-23 nt RNAs.
  • the mRNA is cleaved only in the region corresponding to the sequence ofthe dsRNA and that the mRNA is cleaved at 21-23 nt intervals, strongly indicating that the 21-23 nt fragments from the dsRNA are targeting the cleavage ofthe mRNA. Furthermore, as described in Examples 3 and 4, when the 21-23 nt fragments are purified and added back to the soluble extract, they mediate RNA.
  • Rr-Luc mRNA consisted ofthe 926 nt Rr luciferase coding sequence flanked by 25 nt of 5' untranslated sequence from the ⁇ SP64 plasmid polylinker and 25 nt of 3' untranslated sequence consisting of 19 nt of pSP64 plasmid polylinker sequence followed by a 6 nt Sac I site.
  • Pp-Luc mRNA contained the 1653 nt Pp luciferase coding sequence with a Kpn I site introduced immediately before the Pp luciferase stop codon.
  • the Pp coding sequence was flanked by 5' untranslated sequences consisting of 21 nt of pSP64 plasmid polylinker followed by the 512 nt ofthe 5' untranslated region (UTR) from the Drosophila hunchback mRNA and 3' untranslated sequences consisting ofthe 562 nt hunchback 3' UTR followed by a 6 nt Sac I site.
  • the hunchback 3' UTR sequences used contained six G-to-U mutations that disrupt function ofthe Nanos Response Elements in vivo and in vitro. Both reporter mRNAs terminated in a 25 nt poly(A) tail encoded in the transcribed plasmid.
  • the transcripts were generated by run-off transcription from plasmid templates cleaved at an Nsi I site that immediately followed the 25 nt encoded poly(A) tail. To ensure that the transcripts ended with a poly(A) tail, the Nsi I-cleaved transcription templates were resected with T4 DNA Polymerase in the presence of dNTPs.
  • the SP6 mMessage mMachine kit (A bion) was used for in vitro transcription. Using this kit, about 80% ofthe resulting transcripts are 7-methyl guanosine capped. 32 P-radiolabeling was accomplished by including ⁇ - 32 P-UTP in the transcription reaction.
  • ssRNA, asRNA, and dsRNA corresponded to positions 93 to 597 relative to the start of translation, yielding a 505 bp dsRNA.
  • ss, as, and dsRNA corresponded to positions 118 to 618 relative to the start of translation, yielding a 501 bp dsRNA.
  • the Drosophila nanos competitor dsRNA corresponded to positions 122 to 629 relative to the start of translation, yielding a 508 bp dsRNA.
  • ssRNA, asRNA, and dsRNA (diagrammed in Figure 1) were transcribed in vitro with T7 RNA polymerase from templates generated by the polymerase chain reaction.
  • RNA annealing and native gel electrophoresis ssRNA and asRNA (0.5 ⁇ M) in 10 mM Tris-HCl (pH 7.5) with 20 mM NaCl were heated to 95 ° C for 1 min then cooled and annealed at room temperature for 12 to l ⁇ h. The RNAs were precipitated and resuspended in lysis buffer (below).
  • RNAs were electrophoresed in a 2% agarose gel in TBE buffer and stained with ethidium bromide (Sambrook et al, Molecular Cloning. Cold Spring Harbor Laboratory Press, Plainview, NY. (1989)). Lysate preparation
  • Embryos were dechorionated for 4 to 5 min in 50% (v/v) bleach, washed with water, blotted dry, and transferred to a chilled Potter-Elvehjem tissue grinder (Kontes). Embryos were lysed at 4°C in one ml of lysis buffer (100 mM potassium acetate, 30 mM HEPES-KOH, pH 7.4, 2 mM magnesium acetate) containing 5 mM dithiothreitol (DTT) and 1 mg/ml Pefabloc SC (Boehringer-Mannheim) per gram of damp embryos. The lysate was centrifuged for 25 min at 14,500 x g at 4° C, and the supernatant flash frozen in aliquots in liquid nitrogen and stored at -80°C.
  • lysis buffer 100 mM potassium acetate, 30 mM HEPES-KOH, pH 7.4, 2 mM magnesium acetate
  • Lysate preparation and reaction conditions were derived from those described by Hussain and Leibowitz (Hussain and Leibowitz, Gene 46: 13-23 (1986)). Reactions contained 50% (v/v) lysate, mRNAs (10 to 50 pM final concentration), and 10% (v/v) lysis buffer containing the ssRNA, asRNA, or dsRNA (10 nM final concentration).
  • Each reaction also contained 10 mM creatine phosphate, 10 ⁇ g/ml creatine phosphokinase, 100 ⁇ M GTP, 100 ⁇ M UTP, 100 ⁇ M CTP, 500 ⁇ M ATP, 5 ⁇ M DTT, 0.1 U/mL RNasin (Promega), and 100 ⁇ M of each amino acid.
  • the final concentration of potassium acetate was adjusted to 100 mM.
  • the reactions were assembled on ice and then pre-incubated at 25° C for 10 min before adding mRNA. After adding mRNAs, the incubation was continued for an additional 60 min. The 10 min preincubation step was omitted for the experiments in Figures 3A-3C and 5A-5C.
  • Reactions with 32 P-radiolabeled mRNA were quenched by the addition of 40 volumes of 2x PK buffer (200 mM Tris-HCl, pH 7.5, 25 mM EDTA, 300 mM NaCl, 2% w/v sodium dodecyl sulfate).
  • Proteinase K (E.M. Merck; dissolved in water) was added to a final concentration of 465 ⁇ g/ml.
  • the reactions were then incubated for 15 min at 65° C, extracted with phenol/chloroform/isoamyl alcohol (25:24:1), and precipitated with an equal volume of isopropanol. Reactions were analyzed by electrophoresis in a formaldehyde/agarose (0.8% w/v) gel (Sambrook et al.,
  • Radioactivity was detected by exposing the agarose gel [dried under vacuum onto Nytran Plus membrane (Amersham)] to an image plate (Fujix) and quantified using a Fujix Bas 2000 and Image Gauge 3.0 (Fujix) software.
  • Untreated rabbit reticulocyte lysate (Ambion) and wheat germ extract (A bion) reactions were assembled according to the manufacturer's directions.
  • dsRNA was incubated in the lysate at 27°C (wheat germ) or 30°C (reticulocyte lysate) for 10 min prior to the addition of mRNAs.
  • reporter mRNAs derived from two different luciferase genes that are unrelated both in sequence and in luciferin substrate specificity were used: Renilla reniformis (sea pansy) luciferase (Rr-Luc) and Photuris pennsylvanica (firefly) luciferase (Pp-Luc).
  • Renilla reniformis sinosea pansy luciferase
  • Pr-Luc Photuris pennsylvanica
  • dsRNA generated from one gene was used to target that luciferase mRNA whereas the other luciferase mRNA was an internal control co-translated in the same reaction.
  • dsRNAs of approximately 500 bp were prepared by transcription of polymerase-chain reaction products from the Rr-Luc and Pp-Luc genes. Each dsRNA began -100 bp downstream ofthe start of translation ( Figure 1). Sense (ss) and anti-sense (as) RNA were transcribed in vitro and annealed to each other to produce the dsRNA. Native gel electrophoresis ofthe individual Rr 501 and Pp 505 nt as RNA and ssRNA used to form the Rr and Pp dsRNAs was preformed. The ssRNA, asRNA, and dsRNAs were each tested for their ability to block specifically expression of their cognate mRNA but not the expression ofthe unrelated internal control mRNA.
  • the ssRNA, asRNA, or dsRNA was incubated for 10 min in a reaction containing Drosophila embryo lysate, then both Pp-Luc and Rr-Luc mRNAs were added and the incubation continued for an additional 60 min.
  • the Drosophila embryo lysate efficiently translates exogenously transcribed mRNA under the conditions used.
  • the amounts of Pp-Luc and Rr-Luc enzyme activities were measured and were used to calculate ratios of either Pp-Luc/Rr-Luc ( Figure 2A) or Rr-Luc/Pp-Luc ( Figure 2B). To facilitate comparison of different experiments, the ratios from each experiment were normalized to the ratio observed for a control in which buffer was added to the reaction in place of ssRNA, asRNA, or dsRNA.
  • Figure 2A shows that a 10 nM concentration ofthe 505 bp dsRNA identical to a portion ofthe sequence ofthe Pp-Luc gene specifically inhibited expression of the Pp- Luc mRNA but did not affect expression ofthe Rr-Luc internal control. Neither ssRNA nor asRNA affected expression of Pp-Luc or the Rr-Luc internal control. Thus, Pp-Luc expression was specifically inhibited by its cognate dsRNA. Conversely, a 10 nM concentration ofthe 501 bp dsRNA directed against the Rr-Luc mRNA specifically inhibited Rr-Luc expression hut not that ofthe Pp-Luc internal control ( Figure 2B).
  • dsRNA reduced specific luciferase expression by 70% in these experiments, in which luciferase activity was measured after 1 h incubation.
  • the translational capacity ofthe reaction was replenished by the addition of fresh lysate and reaction components, a further reduction in targeted luciferase activity relative to the internal control was observed.
  • dsRNA but not asRNA to inhibit gene expression in these lysates is not merely a consequence ofthe greater stability ofthe dsRNA (half-life about 2 h) relative to the single-stranded RNAs (half-life - 10 min).
  • ssRNA and asRNA transcribed with a 7-methyl guanosine cap were as stable in the lysate as uncapped dsRNA, but do not inhibit gene expression, hi contrast, dsRNA formed from the capped ssRNA and asRNA specifically blocks expression ofthe targeted mRNA.
  • RNAi in Drosophila requires the injection of about 0.2 fmol of dsRNA into a syncytial blastoderm embryo (Kennerdell and Carthew, Cell 95:1017-1026 (1998); Carthew, wwwl.pitt.edu/ ⁇ carthew/manual/RNAi_Protocol.html (1999)). Since the average volume of a Drosophila embryo is approximately 7.3 nl, this corresponds to an intracellular concentration of about 25 nM (Mazur et al., Cryobiology 25:543-544 (1988)).
  • dilution ofthe "activated" dsRNA may be effective but has not been tested.
  • both dsRNAs tested were activated by the preincubation procedure, each fully retained its specificity to interfere with expression only ofthe mRNA to which it is homologous. Further study ofthe reactions may provide a route to identifying the mechanism of dsRNA potentiation.
  • preincubation of the dsRNA enhances its capacity to inhibit gene expression in these lysates is that ' specific factors either modify and/or associate with the dsRNA. Accordingly, the addition of increasing amounts of dsRNA to the reaction might titrate such factors and decrease the amount of gene-specific interference caused by a second dsRNA of unrelated sequence.
  • dsRNA (10 nM, 501 bp) targeting the Rr-Luc mRNA caused the destruction ofthe Rr-Luc mRNA but had no effect on the stability of Pp-Luc mRNA ( Figure 5B).
  • the dsRNA specifically caused accelerated decay ofthe mRNA to which it is homologous with no effect on the stability ofthe unrelated control mRNA.
  • This finding indicates that in vivo, at least in Drosophila, the effect of dsRNA is to directly destabilize the target mRNA, not to change the subcellular localization ofthe mRNA, for example, by causing it to be specifically retained in the nucleus, resulting in non-specific degradation.
  • RNAi leads to reduced cytoplasmic mRNA levels in vivo, as measured by in situ hybridization (Montgomery et al, Proc. Natl. Acad. Sci. USA 95:15502-15507 (1998)) and Northern blotting (Ngo et al, Proc. Natl. Acad. Sci. USA 95:14687-14692 (1998)).
  • Northern blot analyses in trypanosomes and hydra suggest that dsRNA typically decreases mRNA levels by less than 90% (Ngo et al., Proc. Natl. Acad. Sci. USA 95:14687-14692 (1998); Lohmann et al., Dev. Biol.
  • RNAi appears to require a minimum length of dsRNA (Ngo et al., Proc. Natl. Acad. Sci., USA, 95: 14687-14692 (1998)).
  • the ability of RNA duplexes of lengths 49 bp, 149 bp, 505 bp, and 997 bp (diagrammed in Figure 1) to target the degradation ofthe Pp-Luc mRNA in vitro was assessed, hi good agreement with in vivo observations, the 49 bp dsRNA was ineffective in vitro, while the 149 bp dsRNA enhanced mRNA decay only slightly, and both the 505 and 997 bp dsRNAs caused robust mRNA degradation (Figure 5C).
  • RNAi RNAi targeting other portions ofthe mRNA cause detectable mRNA degradation, though not as robust as that seen for 500bp dsRNA.
  • some short dsRNA do not mediate RNAi, others of approximately the same length, but different composition, will be able to do so.
  • RNAi is known to exist in some mammalian cells (Wianny and Zernicka-Goetz Nat. Cell Biol. 2: 70-75 (2000)), in many mammalian cell types its presence is likely obscured by the rapid induction by dsRNA of non-specific anti-viral responses.
  • RNAi RNA-targeted destruction of specific mRNA
  • the system described above recapitulates in a reaction in vitro many aspects of RNAi.
  • the targeted mRNA is specifically degraded whereas unrelated control mRNAs present in the same solution are not affected.
  • the process is most efficient with dsRNAs greater than 150 bp in length.
  • the dsRNA-specific degradation reaction in vitro is probably general to many, if not all, mRNAs since it was observed using two unrelated genes.
  • Double-Stranded RNA directs the ATP-dependent cleavage of mRNA at 21 to 23 nucleotide intervals
  • RNAi reactions and lysate preparation were as described in Example 1 (Tuschl et al, Genes Dev., 13:3191-7 (1999)) except that the reaction contained 0.03 g/ml creatine kinase, 25 ⁇ M creatine phosphate (Fluka), and 1 mM ATP. Creatine phosphate was freshly dissolved at 500 mM in water for each experiment. GTP was omitted from the reactions, except in Figures 2 and 3.
  • Pp-luc and Rr-luc mRNAs and Pp- and Rr-dsRNAs were synthesized by in vitro transcription as described previously (Tuschl et al., Genes Dev., 13:3191-7 (1999)).
  • the 5' sense RNA primer was gcgtaatacgactcactataGAACAAAGGAAACGGATGAT (SEQ ID NO: 2) and the 3' sense RNA primer was GAAGAAGTTATTCTCCAAAA (SEQ ID NO: 3); the 5' asRNA primer was gcgtaatacgactcactataGAAGAAGTTATTCTCCAAAA (SEQ ID NO:
  • dsRNA 'A' the 5' sense RNA primer was gcgtaatacgactcactataGTAGCGCGGTGTATTATACC (SEQ ID NO: 6)and the 3' sense RNA primer was GTACAACGTCAGGTTTACCA (SEQ ID NO: 7); the 5' asRNA primer was gcgtaatacgactcactataGTACAACGTCAGGTTTACCA (SEQ ID NO: 5).
  • RNAs were 5 '-end-labeled using guanylyl transferase (Gibco/BRL), S- adenosyl methionine (Sigma), and ⁇ - 32 P-GTP (3000 Ci/mmol; New England Nuclear) according to the manufacturer's directions. Radiolabeled RNAs were purified by poly(A) selection using the Poly(A) Tract HI kit (Promega).
  • Nonradio active 7-methyl- guanosine- and adenosine-capped RNAs were synthesized in in vitro transcription reactions with a 5-fold excess of 7-methyl-G(5') ⁇ pp(5')G or
  • ATP was depleted by incubating the lysate for 10 minutes at 25 °C with 2 mM glucose and 0.1 U/ml hexokinase (Sigma).
  • Protein synthesis inhibitors were purchased from Sigma and dissolved in absolute ethanol as 250-fold concentrated stocks. The final concentrations of inhibitors in the reaction were: anisomycin, 53 mg/ml; cycloheximide, 100 mg/ml; chloramphenicol, 100 mg/ml.
  • Relative protein synthesis was determined by measuring the activity of Rr luciferase protein produced by translation ofthe Rr-luc mRNA in the RNAi reaction after 1 hour as- described previously (Tuschl et al., Genes Dev., 13:3191-7 (1999)).
  • Length standards were generated by complete RNase Tl digestion of ⁇ - 32 P-ATP-labeled 501 nt Rr-luc sense RNA and asRNA.
  • 5'- 32 P-radiolabeled mRNA was incubated with dsRNA as described previously (Tuschl et al., Genes Dev., 13:3191- 3197 (1999)) and analyzed by electrophoresis in 5% ( Figure 5B) and 6% ( Figure 6C) polyacrylamide sequencing gels.
  • Length standards included commercially available RNA size standards (FMC Bioproducts) radiolabeled with guanylyl transferase as described above and partial base hydrolysis and RNase Tl ladders generated from the 5 '-radiolabeled mRNA.
  • RNAs Internally ⁇ - 32 P -ATP -labeled dsRNAs (5 nM) were incubated in Drosophila lysate for 2 hours at standard conditions. After deproteinization, samples were run on 12% sequencing gels to separate full-length dsRNAs from the 21-23 nt products. RNAs were eluted from the gel slices in 0.3 M NaCl overnight, ethanol-precipitated, collected by centrifugation, and redissolved in 20 ⁇ l water.
  • RNA was hydrolyzed into nucleoside 5 -phosphates with nuclease PI (10 ⁇ l reaction containing 8 ⁇ l RNA in water, 30 mM KOAc pH 5.3, 10 mM ZnSO 4 , 10 ⁇ g or 3 units nuclease PI, 3 hours, 50° C). Samples (1 ml) were co-spotted with non-radioactive 5 -mononucleotides [0.05 O.D.
  • RNAi (Tuschl et al., Genes Dev., 13:3191-7 (1999)).
  • dsRNA-mediated gene silencing was monitored by measuring the synthesis of luciferase protein from the targeted mRNA.
  • these RNAi reactions contained an ATP-regenerating system, needed for the efficient translation ofthe mRNA.
  • ATP was, in fact, required for RNAi
  • the lysates were depleted for ATP by treatment with hexokinase and glucose, which converts ATP to ADP, and RNAi was monitored directly by following the fate of 32 P -radiolabeled Renilla reniformis luciferase (Rr-luc) mRNA ( Figure 6).
  • ATP regeneration required both exogenous creatine phosphate and creatine kinase, which acts to transfer a high-energy phosphate from creatine phosphate to ADP.
  • ATP-depleted extracts were supplemented with either creatine phosphate or creatine kinase separately, no RNAi was observed. Therefore, RNAi requires ATP in vitro.
  • ATP, creatine phosphate, and creatine kinase were all added together to reactions containing the ATP-depleted lysate, dsRNA-dependent degradation ofthe Rr-luc mRNA was restored ( Figure 6).
  • RNAi with a Photinus pyralis luciferase (Pp-luc) mRNA was also ATP-dependent.
  • RNAi might be coupled to mRNA translation, a highly energy-dependent process.
  • various inhibitors of protein synthesis were added to the reaction by preparing a denaturing agarose-gel analysis of 5' -32P-radio labeled Pp-luc mRNA after incubation for indicated times in a standard RNAi reaction with and without protein synthesis inhibitors.
  • the eukaryotic translation inhibitors anisomycin, an inhibitor of initial peptide bond formation, cycloheximide, an inhibitor of peptide chain elongation, and puromycin, a tRNA mimic which causes premature termination of translation (Cundliffe, Antibiotic Inhibitors of Ribosome Function, hi The Molecular Basis of Antibiotic Action, E. Gale, E. Cundliffe, P. Reynolds, M. Richmond and M.
  • Translational initiation is an ATP-dependent process that involves recognition ofthe 7-methyl guanosine cap ofthe mRNA (Kozak, Gene, 234:187-208 (1999); Merrick and Hershey, The Pathway and Mechanism of Eukaryotic Protein Synthesis. In Translational Control, J. Hershey, M. Mathews and N. Soneriberg, eds. (Cold Spring Harbor, NY: Cold Spring Harbor Laboratory Press), pp. 31-69 (1996)).
  • the Drosophila lysate used to support RNAi in vitro also recapitulates the cap-dependence of translation; Pp-luc mRNA with a 7-methyl-guanosine cap was translated greater than ten-fold more efficiently than was the same mRNA with an A(5')ppp(5')G cap ( Figure 7B). Both RNAs were equally stable in the Drosophila lysate, showing that this difference in efficiency cannot be merely explained by more rapid decay ofthe mRNA with an adenosine cap (see also Gebauer et al., EMBO J., 18:6146-54 (1999)).
  • RNAs 25 nt in length are generated from both the sense and anti-sense strands of genes undergoing post-transcriptional gene silencing in plants (Hamilton and Baulcombe, Science, 286:950-2 (1999)). Denaturing acrylamide-gel analysis of the products formed in a two-hour incubation of unifonnly 3 P-radiolabeled dsRNAs and capped asRNA in lysate under standard RNAi conditions, in the presence or absence of target mRNAs. It was found that dsRNA is also processed to small RNA fragments.
  • RNA fragments When incubated in lysate, approximately 15% ofthe input radioactivity of both the 501 bp Rr-dsRNA and the 505 bp Pp-dsRNA appeared in 21 to 23. nt RNA fragments. Because the dsRNAs are more than 500 bp in length, the 15% yield of fragments implies that multiple.21-23 nt RNAs are produced from each full-length dsRNA molecule. No other stable products were detected. The small RNA species were produced from dsRNAs in which both strands were uniformly 32 P-radiolabeled.
  • RNA-RNA helix Formation ofthe 21-23 nt RNAs from the dsRNA did not require the presence ofthe corresponding mRNA, demonstrating that the small RNA species is generated by processing ofthe dsRNA, rather than as a product of dsRNA-targeted mRNA degradation. It was noted that 22 nucleotides corresponds to two turns of an A-form RNA-RNA helix.
  • 21-23 nt RNAs were generated with comparable efficiency. These data support the idea that the 21-23 nt RNAs are generated by symmetric processing ofthe dsRNA. A variety of data support the idea that the 21-23 nt RNA is efficiently generated only from dsRNA and is not the consequence of an interaction between single-stranded RNA and the dsRNA.
  • a 32 P-radiolabeled 505 nt Pp-luc sense RNA or asRNA was not efficiently converted to the 21-23 nt product when it was incubated with 5 nM nonradioactive 505 bp Pp- dsRNA.
  • a 501 nt 7-methyl-guanosine-ca ⁇ ped Rr- asRNA produced only a barely detectable amount of 21-23 nt RNA (capped single- stranded RNAs are as stable in the lysate as dsRNA, Tuschl et al., Genes Dev., 13:3191- 7 (1999)), probably due to a small amount of dsRNA contaminating the anti-sense preparation.
  • Rr-luc niRNA when included in the reaction with the 32 P- radiolabeled, capped Rr-asRNA, a small amount of 21-23 nt product was generated, corresponding to 4% ofthe amount of 21-23 nt RNA produced from an equimolar amount of Rr-dsRNA.
  • This result is unlikely to reflect the presence of contaminating dsRNA in the Rr-asRNA preparation, since significantly more product was generated from the asRNA in the presence ofthe Rr-luc mRNA than in the absence.
  • the data suggest that asRNA can interact with the complementary mRNA sequences to form dsRNA in the reaction and that the resulting dsRNA is subsequently processed to the small RNA speeies.
  • Rr-asRNA can support a low level of bona fide RNAi in vitro (see below), consistent with this explanation.
  • dsRNA adenosine deaminases unwind dsRNA by converting adenosine to inosine, which does not base-pair with uracil.
  • dsRNA adenosine deaminases function in the post-xranscriptional editing of mRNA (for review see Bass, Trends Biochem. Sci., 22:157-62 (1997)).
  • RNAi RNA adenosine deaminase
  • degree of conversion of adenosine to inosine in the 501 bp Rr-luc and 505 bp Pp-luc dsRNAs after incubation with Drosophila embryo lysate in a standard in vitro RNAi reaction was examined.
  • Adenosine deamination in full-length dsRNA and the 21-23 nt RNA species was assessed by two-dimensional thin-layer chromatography.
  • Inorganic phosphate (P j ,) was produced by the degradation of mon ⁇ nucleotides by phosphatases that contaminate commercially available nuclease PI (Auxilien et al., J. Mol. Biol, 262:437-458 (1996)). The degree of adenosine deamination in the 21-23 nt species was also determined.
  • the full-length dsRNA radiolabeled with [ 32 P]-adenosine was incubated in the lysate, and both the full-length dsRNA and the 21-23 nt RNA products were purified from a denaturing acrylamide gel, cleaved to mononucleotides with nuclease PI, and analyzed by two-dimensional thin- layer chromatography. A significant fraction ofthe adenosines in the full-length dsRNA were converted to inosine after 2 hours (3.1% and 5.6% conversion for Pp-luc and Rr-luc dsRNAs, respectively).
  • the sites of mRNA cleavage were examined using three different dsRNAs, 'A,' 'B,' and 'C,' displaced along the Rr-luc sequence by approximately 100 nts. Denaturing acrylamide-gel analysis ofthe stable, 5'-cleavage products produced after incubation ofthe Rr-luc mRNA for the indicated times with each ofthe three dsRNAs, 'A,' 'B,' and 'C,' or with buffer (0) was performed. The positions of these relative to the Rr-luc mRNA sequence are shown in Figure 9. Each ofthe three dsRNAs was incubated in a standard RNAi reaction with Rr-luc mRNA 32 P -radiolabeled within the 5'-cap.
  • each ofthe three dsRNAs produced a ladder of bands corresponding to a set of mRNA cleavage products characteristic for that particular dsRNA.
  • the stable, 5' mRNA cleavage products were restricted to the region ofthe Rr-luc mRNA that corresponded to the dsRNA ( Figures 9 and 10).
  • dsRNA 'A the lengths ofthe 5'- cleavage products ranged from 236 to just under -750 nt; dsRNA 'A spans nucleotides 233 to 729 ofthe Rr-luc mRNA.
  • Incubation ofthe mRNA with dsRNA 'B' produced mRNA 5 '-cleavage products ranging in length from 150 to -600 nt; dsRNA 'B' spans nucleotides 143 to 644 ofthe mRNA.
  • dsRNA 'C produced mRNA cleavage products from 66 to -500 nt in length.
  • This dsRNA spans nucleotides 50 to 569 of the Rr-luc mRNA. Therefore, the dsRNA not only provides specificity for the RNAi reaction, selecting which mRNA from the total cellular mRNA pool will be degraded, but also determines the precise positions of cleavage along the mRNA sequence.
  • Results show that the 21-23 nt RNA species produced by incubation of -500 bp dsRNA in the lysate caused sequence- specific interference in vitro when isolated from an acrylamide gel and added to a new RNAi reaction in place ofthe full-length dsRNA.
  • RNAi-specific proteins bind to RNA and RNA to form a complex with RNA and recruit a nuclease that cleaves the mRNA.
  • strand exchange could occur in a protein-RNA complex that transiently holds a 21-23 nt dsRNA fragment close to the mRNA. Separation ofthe two strands ofthe dsRNA following fragmentation might be assisted by an ATP-dependent RNA helicase, explaining the observed ATP enhancement of 21-23 nt RNA production.
  • each small RNA fragment produces one, or at most two, cleavages in the mRNA, perhaps at the 5' or 3' ends ofthe 21-23 nt fragment.
  • the small RNAs may be amplified by an RNA-directed RNA polymerase such as that encoded by the ego-1 gene in C. elegans (Smardon et al, Current Biology, 10:169- 178 (2000)) or the qde- 1 gene in Neurospora (Cogoni and Macino, Nature, 399:166-9 (1999)), producing long-lasting post-transcriptional gene silencing in the absence ofthe dsRNA that initiated the RNAi effect. Heritable RNAi in C.
  • elegans requires the rde-1 and rde-4 genes to initiate, but not to persist in subsequent generations.
  • the rde-2, rde- 3, and mut-7 genes in C. elegans are required in the tissue where RNAi occurs, but are not required for initiation of heritable RNAi (Grishok et al., Science, in press 2000).
  • These 'effector' genes are likely to encode proteins functioning in the actual selection of mRNA targets and in their subsequent cleavage.
  • ATP may be required at any of a number of steps during RNAi, including complex formation on the dsRNA, strand dissociation during or after dsRNA cleavage, pairing ofthe 21-23 nt RNAs with the target mRNA, mRNA cleavage, and recycling ofthe targeting complex.
  • Some genes involved in RNAi are also important for transposon silencing and co-suppresion. Co-suppression is a broad biological phenomenon spanning plants, insects and perhaps humans. The most likely mechanism in Drosophila melanogaster is transcriptional silencing (Pal-Bhanra et al, Cell 99: 35-36. Thus, 21-23 nt fragments are likely to be involved in transcriptional control, as well as in post-transcriptional cotrol.
  • Example 3 Isolated 21-23 mers caused sequence-specific interference when added to a new RNAi reaction
  • RNA samples containing the non-radioactive 21-23 nt fragments were cut out and the 21-23 nt fragments were eluted from the gel slices at 4° C overnight in 0.4 ml 0.3 M NaCl.
  • the RNA was recovered from the supernatant by ethanol precipitation and centrifugation. The RNA pellet was dissolved in 10 ⁇ l of lysis buffer.
  • gel slices slightly above and below the 21-23 nt band were also cut out and subjected to the same elution and precipitation procedures.
  • a non-incubated dsRNA loaded on the 15% gel and a gel slice corresponding to 21-23 nt fragments was cut out and eluted. All pellets from the control experiments were dissolved in 10 ⁇ l lysis buffer. The losses of RNA during recovery from gel slices by elution are approx. 50%.
  • RNAi incubation reaction 1 ⁇ l ofthe eluted 21-23 mer or control RNA solution was used for a standard 10 ⁇ l RNAi incubation reaction (see above).
  • the 21-23 mers were preincubated in the lysate containing reaction mixture for 10 or 30 min before the addition ofthe target and control mRNA. During pre-incubation, proteins involved in RNA interference may re- associate with the 21-23 mers due to a specific signal present on these RNAs.
  • the incubation was continued for another hour to allow translation of the target and control mRNAs.
  • the reaction was quenched by the addition of passive lysis buffer (Promega), and luciferase activity was measured.
  • RNA interference is the expressed as the ratio of target to control luciferase activity normalized by an RNA-free buffer control. Specific suppression ofthe target gene was observed with either 10 or 30 minutes pre- incubation. The suppression was reproducible and reduced the relative ratio of target to control by 2-3 fold. None of the RNA fragments isolated as controls showed specific interference. For comparison, incubation of 5 nM 500 bp dsRNA (10 min pre- incubation) affects the relative ratio of control to target gene approx. 30-fold.
  • the 21-23 nt fragments have a terminal 3' hydroxyl group, as evidenced by altered mobility on a sequencing gel following periodate treatment and beta-elimination.
  • Example 4 21 -23 -mers purified by non-denaturing methods caused sequence-specific interference when added to a new RNAi reaction.
  • RNA Fifty nanomolar double-stranded RNA (501 bp Rr-luc dsRNA, as described in example 1) was incubated in a 1 ml in vitro reaction with lysate at 25 °C (see example 1). The reaction was then stopped by the addition of an equal volume of 2x PK buffer (see example 1) and proteinase K was added to a final concentration of 1.8 ⁇ g/ ⁇ l. The reaction was incubated for an additional 1 h at 25°C, phenol extracted, and then the RNAs were precipitated with 3 volumes of ethanol.
  • the ethanol precipitate was collected by centrifugation, and the pellet was resuspended in 100 ⁇ l of lysis buffer and applied to a Superdex HR 200 10/30 gel filtration column (Pharmacia) run in lysis buffer at 0.75 ml/min. 200 ⁇ l fractions were collected from the column. Twenty ⁇ l of 3 M sodium acetate and 20 ⁇ g glycogen was added to each fraction, and the RNA was recovered by precipitation with 3 volumes of ethanol. The precipitates were resuspended in 30 ⁇ l of lysis buffer. Column profiles following the fractionation of 32P -labeled input RNA are shown in Figure 13 A.
  • RNA in the in vitro RNAi reaction yields a concentration of RNA in the in vitro RNAi reaction that is approximately equal to the concentration of that RNA species in the original reaction prior to loading on the column.
  • the fractions were preincubated in the lysate containing reaction mixture for 30 min before the addition of 10 nM Rr-luc mRNA target and 10 nM Pp-luc control mRNA. During pre-incubation, proteins involved in RNA interference may re-associate with the 21-23-mers due to a specific signal present on these RNAs. The incubation was continued for another three hours to allow translation ofthe target and control mRNAs.
  • the reaction was quenched by the addition of passive lysis buffer (Promega), and luciferase activity was measured.
  • the suppression of Rr-luc mRNA target expression by the purified 21-23 nt fragments was reproducible and reduced the relative ratio of target to control by >30-fold, an amount comparable to a 50 nM 500 bp dsRNA control. Suppression of target mRNA expression was specific: little or no effect on the expression ofthe Pp-luc mRNA control was observed.
  • RNAs were chemically synthesized using Expedite RNA phosphoramidites and thymidine phosphoramidite (Proligo, Germany). Synthetic oligonucleotides were deprotected and gel-purified (Elbashir, S.M., Lendeckel, W. & Tuschl, T., Genes & Dev. 15, 188-200 (2001)), followed by Sep-Pak C18 cartridge (Waters, Milford, MA, USA) purification (Tuschl, t, et al, Biochemistry, 32:11658- 11668 (1993)). The siRNA sequences targeting GL2 (Ace. X65324) and GL3 luciferase (Ace.
  • U47296 corresponded to the coding regions 153-173 relative to the first nucleotide ofthe start codon
  • siRNAs targeting RL (Ace. AF025846) corresponded to region 119-129 after the start codon.
  • Longer RNAs were transcribed with T7 RNA polymerase from PCR products, followed by gel and Sep-Pak purification.
  • the 49 and 484 bp GL2 or GL3 dsRNAs corresponded to position 113- 161 and 113-596, respectively, relative to the start of translation; the 50 and 501 bp RL dsRNAs corresponded to position 118-167 and 118-618, respectively.
  • PCR templates for dsRNA synthesis targeting humanized GFP were amplified from pAD3 (Kehlenbach, R.H., et al, J. Cell Biol, 747.863-874 (1998)), whereby 50 and 501 bp hG dsRNA corresponded to position 118-167 and 118-618, respectively, to the start codon.
  • annealing buffer 100 mM potassium acetate, 30 mM HEPES-KOH at pH 7.4, 2 mM magnesium acetate
  • the 37 °C incubation step was extended overnight for the 50 and 500 bp dsRNAs, and these annealing reactions were performed at 8.4 ⁇ M and 0.84 ⁇ M strand concentrations, respectively.
  • S2 cells were propagated in Schneider's Drosophila medium (Life Technologies) supplemented with 10% FBS, 100 units/ml penicillin, and 100 ⁇ g/ml streptomycin at 25 °C. 293, NIH/3T3, HeLa S3, COS-7 cells were grown at 37 °C in Dulbecco's modified Eagle's medium supplemented with 10% FBS, 100 units/ml penicillin, and 100 ⁇ g/ml streptomycin. Cells were regularly passaged to maintain exponential growth. 24 h before transfection at approx.
  • mammalian cells were trypsinized and diluted 1:5 with fresh medium without antibiotics (1-3 x 10 5 cells/ml) and transferred to 24-well plates (500 ⁇ l/well). S2 cells were not trypsinized before splitting. Transfection was carried out with Lipofectamine 2000 reagent (Life Technologies) as described by the manufacturer for adherent cell lines. Per well, 1.0 ⁇ g pGL2-Control (Promega) or pGL3 -Control (Promega), 0.1 ⁇ gpRL- TK (Promega), and 0.28 ⁇ g siRNA duplex or dsRNA, formulated into liposomes, were apphed; the final volume was 600 ⁇ l per well.
  • RNA interference is the process of sequence-specific, post- transcriptional gene silencing in animals and plants, initiated by double-stranded RNA (dsRNA) homologous in sequence to the silenced gene (Fire, A., Trends Genet, 75:358-363 (1999); Sharp, P.A. & Zamore, P.D., Science, 287:2431-2433 (2000); Sijen, T. & Kooter, J.M., Bioessays, 22:520-531 (2000); Bass, B.L., Cell, 707:235-238 (2000); Hammond, S.M., et al, Nat. Rev. Genet, 2:110-119 (2001)).
  • dsRNA double-stranded RNA
  • the mediators of sequence-specific mRNA degradation are 21 and 22 nt small interfering RNAs (siRNAs) generated by RNase HI cleavage from longer dsRNAs 6"10 (Hamilton, AJ. &Baulcombe, D.C., Science, 286:950-952 (1999); Hammond, S.M., et al, Nature, 404:293-296 (2000); Zamore, P.D., et al, Cell, 101:25-33 (2000); Bernstein, E., et al, Naature, 409:363-366 (2001); Elbashir, S.M., et al, Genes & Dev., 75:188-200 (2001)).
  • siRNAs small interfering RNAs
  • siRNA duplexes are able to specifically suppress reporter gene expression in multiple mammalian tissue cultures, including human embryonic kidney (293) and HeLa cells. In contrast to 50 or 500 bp dsRNAs, siRNAs do not activate the interferon response. These results indicate that siRNA duplexes are a general tool for sequence-specific inactivation of gene function in mammalian cells.
  • siRNA duplexes were co-transfected with the reporter plasmid combhiations pGL2/pRL or pGL3/pRL, into D. melanogaster Schneider S2 cells or mammalian cells using cationic liposomes. Luciferase activities were determined 20 h after transfection. hi all cell lines tested, specific reduction ofthe expression ofthe reporter genes in the presence of cognate siRNA duplexes was observed ( Figures 15A-15J). Remarkably, the absolute luciferase expression levels were unaffected by non-cognate siRNAs, indicating the absence of harmful side effects by 21 nt RNA duplexes (e.g. Figures 16A-16D, for HeLa cells). In D.
  • GL2 expression was reduced 3- to 12-fold, GL3 expression 9- to 25-fold, and RL expression 1- to 3-fold, in response to the cognate siRNAs.
  • RL luciferase For 293 cells, targeting of RL luciferase by RL siRNAs was ineffective, although GL2 and GL3 targets responded specifically ( Figures 151, 15J). It is likely that the lack of reduction of RL expression in 293 cells is due to its 5- to 20-fold higher expression compared to any other mammalian cell line tested and/or to limited accessibility ofthe target sequence due to RNA secondary structure or associated proteins. Nevertheless, specific targeting of GL2 and GL3 luciferase by the cognate, siRNA duplexes indicated that RNAi is also functioning in 293 cells.
  • siRNA duplexes In co-transfection experiments, 25 nM siRNA duplexes with respect to the final volume of tissue culture medium were used ( Figures 15A-15J, 16A-16F). Increasing the siRNA concentration to 100 nM did not enhance the specific silencing effects, but started to affect transfection efficiencies due to competition for liposome encapsulation between plasmid DNA and siRNA. Decreasing the siRNA concentration to 1.5 nM did not reduce the specific silencing effect, even though the siRNAs were now only 2- to 20-fold more concentrated than the DNA plasmids.
  • siRNAs are extraordinarily powerful reagents for mediating gene silencing, and that siRNAs are effective at concentrations that are several orders of magnitude below the concentrations applied in conventional antisense or ribozyme gene targeting experiments.
  • 50 and 500 bp dsRNAs cognate to the reporter genes were prepared.
  • dsRNAs from humanized GFP (hG) was used as non-specific control.
  • CHO-K1 cells appear to be deficient in the interferon response, hi another report, 293, NIH/3T3, and BHK-21 cells were tested for RNAi using luciferase/lacZ reporter combinations and 829 bp specific lacZ or 717 bp unspecific GFP dsRNA(Caplen, N.J., et al, Gene, 252:95-105 (2000)).
  • the failure of detecting RNAi in this case is likely due to the less sensitive luciferase/lacZ reporter assay and the length differences of target and control dsRNA.
  • the results described herein indicate that RNAi is active in mammalian cells, but that the silencing effect is difficult to detect if the interferon system is activated by dsRNA >30 bp.
  • siRNA duplexes mediate post-transcriptional gene silencing by reconstitution of a siRNA-protein complexes (siRNPs), which are guiding mRNA recognition and targeted cleavage (Hammond, S.M., et al, Nature, 404:293-296 (2000); Zamore, P.D., et al, Cell, 101:25-33 (2000); Elbashir, S.M., et al, Genes & Dev., 75:188-200 (2001)).
  • siRNA-protein complexes siRNA-protein complexes
  • dsRNA-mediated post-transcriptional silencing has also been linked to RNA- directed DNA methylation, which may also be directed by 21 nt siRNAs (Wassenegger, M., Plant Mol. Biol, 43:203-220 (2000); Finnegan, E.J., et al, Curr. Biol, 77.R99-R102 (2000)). Methylation of promoter regions can lead to transcriptional silencing (Metter, M.F., et al, EMBO J., 19:5194-5201 (2000)), but methylation in coding sequences must not (Wang, M.-B., RNA, 7.T6-28 (2001)).
  • DNA methylation and transcriptional silencing in mammals are well-documented processes (Kass, S.U., et al, Trends Genet, 73:444-449 (1997); Razin, A., EMBO J, 77:4905-4908 (1998)), yet they have not been linked to post-transcriptional silencing. Methylation in mammals is predominantly directed towards CpG residues. Because there is no CpG in the RL siRNA, but RL siRNA mediates specific silencing in mammalian tissue culture, it is unlikely that DNA methylation is critical for our observed silencing process. In summary, described herein, is siRNA- mediated gene silencing in mammalian cells.

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PCT/US2001/010188 2000-03-30 2001-03-30 Rna sequence-specific mediators of rna interference WO2001075164A2 (en)

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BRPI0117339A BRPI0117339B1 (pt) 2000-03-30 2001-03-30 método para identificar sítios alvos dentro de mrna que sejam eficientemente clivados pelo processo rnai, e método para identificar rnas de 21-23 nt que medeiam eficientemente rnai
CA 2404890 CA2404890C (en) 2000-03-30 2001-03-30 Rna sequence-specific mediators of rna interference
DE60140676T DE60140676D1 (de) 2000-03-30 2001-03-30 Mediatoren von rns-interferenz, die rns-sequenzspezifisch sind
AU2001249622A AU2001249622B2 (en) 2000-03-30 2001-03-30 RNA sequence-specific mediators of RNA interference
EP10184660.8A EP2361981B2 (en) 2000-03-30 2001-03-30 RNA sequence-specific mediators of RNA interference
BRPI0117341A BRPI0117341B1 (pt) 2000-03-30 2001-03-30 método para avaliar um agente agindo em um produto de gene, método para avaliar se um produto de gene é um alvo adequado para descoberta de drogas e método para avaliar se um produto de gene é um alvo adequado para avaliar a habilidade de um agente agir no produto de gene
BRPI0117338A BRPI0117338B1 (pt) 2000-03-30 2001-03-30 método para produzir células animais nocauteadas in vitro e método para produzir uma célula nocauteada
BRPI0117340A BRPI0117340B1 (pt) 2000-03-30 2001-03-30 método para examinar a função de um gene em uma célula in vitro
EP01922870.9A EP1309726B2 (en) 2000-03-30 2001-03-30 Rna sequence-specific mediators of rna interference
AU4962201A AU4962201A (en) 2000-03-30 2001-03-30 Rna sequence-specific mediators of rna interference
AT01922870T ATE450621T2 (de) 2000-03-30 2001-03-30 Mediatoren von rns-interferenz, die rns- sequenzspezifisch sind
ES01922870T ES2336887T5 (es) 2000-03-30 2001-03-30 Mediadores de interferencia por ARN específicos de secuencias de ARN
JP2001573036A JP5500750B2 (ja) 2000-03-30 2001-03-30 Rna干渉のrna配列特異的メディエータ
DK01922870.9T DK1309726T4 (en) 2000-03-30 2001-03-30 RNA Sequence-Specific Mediators of RNA Interference
IL15192801A IL151928A0 (en) 2000-03-30 2001-03-30 Rna sequence-specific mediators of rna interference
EP14164227.2A EP2796553B1 (en) 2000-03-30 2001-03-30 RNA sequence-specific mediators of RNA interference
NZ522045A NZ522045A (en) 2000-03-30 2001-03-30 RNA sequence-specific mediators of RNA interference
BR0107536A BR0107536A (pt) 2000-03-30 2001-03-30 Rna isolado, extrato solúvel, método para produzir rna de cerca de 21 a cerca de 23 nucleotìdeos de comprimento; dna isolado
HU0302557A HU230458B1 (hu) 2000-12-01 2001-11-29 Az RNS interferenciát közvetítő kis RNS molekulák
IL15599101A IL155991A0 (en) 2000-12-01 2001-11-29 Rna interference mediating small rna molecules
EP07014533A EP1873259B1 (en) 2000-12-01 2001-11-29 RNA interference mediated by 21 and 22nt RNAs
BRPI0115814A BRPI0115814B8 (pt) 2000-12-01 2001-11-29 moléculas de rna de filamento duplo, seu método de preparação e composição farmacêutica compreendendo as mesmas
EP01985833.1A EP1407044B2 (en) 2000-12-01 2001-11-29 Rna interference mediating small rna molecules
EP10179947.6A EP2351852B2 (en) 2000-12-01 2001-11-29 RNA interference mediating small RNA molecules
TR2004/01292T TR200401292T3 (tr) 2000-12-01 2001-11-29 RNAÁgirişimineÁyolÁaçanÁküçükÁRNAÁmolekülleri
DK01985833.1T DK1407044T4 (en) 2000-12-01 2001-11-29 RNA interference mediating small RNA molecules
PCT/EP2001/013968 WO2002044321A2 (en) 2000-12-01 2001-11-29 Rna interference mediating small rna molecules
CA2429814A CA2429814C (en) 2000-12-01 2001-11-29 Rna interference mediating small rna molecules
CZ20031839A CZ302719B6 (cs) 2000-12-01 2001-11-29 Izolovaná molekula dvouretezcové RNA, zpusob její výroby a její použití
JP2002546670A JP4095895B2 (ja) 2000-12-01 2001-11-29 Rna干渉を媒介する短鎖rna分子
SI200130787T SI1407044T2 (en) 2000-12-01 2001-11-29 Rna interference mediating small rna molecules
US10/433,050 US20040259247A1 (en) 2000-12-01 2001-11-29 Rna interference mediating small rna molecules
EP17160119.8A EP3199631B1 (en) 2000-12-01 2001-11-29 Rna interference mediating small rna molecules
AU2002235744A AU2002235744B8 (en) 2000-12-01 2001-11-29 RNA interference mediating small RNA molecules
DE60130583.3T DE60130583T3 (de) 2000-12-01 2001-11-29 Kleine rns moleküle, die rns-interferenz vermitteln
KR1020087011582A KR100909681B1 (ko) 2000-12-01 2001-11-29 Rna 간섭을 매개하는 작은 rna 분자
NZ525888A NZ525888A (en) 2000-12-01 2001-11-29 RNA interference mediating small RNA molecules
CNB018209009A CN100523215C (zh) 2000-12-01 2001-11-29 介导rna干涉的小rna分子
CZ2011452A CZ308053B6 (cs) 2000-12-01 2001-11-29 Izolovaná molekula dvouřetězcové RNA, způsob její výroby a její použití
KR1020037006978A KR100872437B1 (ko) 2000-12-01 2001-11-29 Rna 간섭을 매개하는 작은 rna 분자
PT01985833T PT1407044E (pt) 2000-12-01 2001-11-29 Moléculas curtas de arn que medeiam a interferência de arn
RU2003119457/13A RU2322500C2 (ru) 2000-12-01 2001-11-29 Малые молекулы рнк, опосредующие интерференцию рнк
PL365784A PL218876B1 (pl) 2000-12-01 2001-11-29 Wyizolowana cząsteczka dwuniciowego RNA, sposób wytwarzania cząsteczki dwuniciowego RNA, zastosowanie cząsteczki dwuniciowego RNA do wytwarzania leku do modulowania działania genu związanego z patogenem, genu związanego z nowotworem, oraz genu związanego z chorobą autoimmunologiczną, sposób in vitro kierowania miejscowo specyficznymi interferencjami RNA w komórce, zastosowanie sposobu in vitro do ustalania działania genu w komórce oraz do modulowania działania genu w komórce, środek farmaceutyczny, komórka eukariotyczna transfekowana cząsteczką RNA lub cząsteczką DNA kodującą tę cząsteczkę RNA, oraz zastosowanie komórki eukariotycznej w procedurach analitycznych oraz w procedurach preparatywnych
MXPA03004836A MXPA03004836A (es) 2000-12-01 2001-11-29 Moleculas pequenas de arn que median la interferencia de arn.
AT01985833T ATE373724T2 (de) 2000-12-01 2001-11-29 Kleine rns moleküle, die rns-interferenz vermitteln
ES01985833.1T ES2215494T5 (es) 2000-12-01 2001-11-29 Moléculas de RNA pequeñas que median la interferencia de RNA
IL151928A IL151928A (en) 2000-03-30 2002-09-25 Preparation, pharmaceutical preparations and uses of rna-specific rna disorder mediators
US10/255,568 US20030108923A1 (en) 2000-03-30 2002-09-26 RNA sequence-specific mediators of RNA interference
KR1020027012832A KR100919786B1 (ko) 2000-03-30 2002-09-27 Rna 간섭의 rna 서열 특이적인 매개체
ZA200303929A ZA200303929B (en) 2000-12-01 2003-05-21 RNA interference mediating small RNA molecules.
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US10/832,257 US20050026278A1 (en) 2000-12-01 2004-04-27 RNA interference mediating small RNA molecules
US10/832,248 US7078196B2 (en) 2000-12-01 2004-04-27 RNA interference mediating small RNA molecules
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US11/142,865 US20050234006A1 (en) 2000-12-01 2005-06-02 RNA interference mediating small RNA molecules
US11/142,866 US20050234007A1 (en) 2000-12-01 2005-06-02 RNA interference mediating small RNA molecules
JP2006317758A JP4494392B2 (ja) 2000-12-01 2006-11-24 Rna干渉を媒介する短鎖rna分子
US11/634,129 US20070093445A1 (en) 2000-12-01 2006-12-06 RNA interference mediating small RNA molecules
US11/634,138 US20080269147A1 (en) 2000-12-01 2006-12-06 RNA interference mediating small RNA molecules
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AU2007214287A AU2007214287B2 (en) 2000-03-30 2007-08-28 RNA sequence-specific mediators of RNA interference
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IL202350A IL202350A (en) 2000-03-30 2009-11-26 Realtors of rna disorder specific to rna sequence
JP2010046471A JP5749892B2 (ja) 2000-12-01 2010-03-03 Rna干渉を媒介する短鎖rna分子
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